移民异质性与英国和美国的收入分配:来自面板数据分位数回归分析的新证据

Sherrilyn M. Billger, Carlos Lamarche
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引用次数: 5

摘要

在本文中,我们使用一种相对较新的面板数据分位数回归技术来检验本土移民的收入差异:1)在整个有条件的工资分配中,2)控制个体异质性。以前没有论文同时考虑过这些因素。我们关注女性和男性,使用来自PSID和BHPS的纵向数据。我们表明,原籍国、居住国和性别都是收入差异的重要决定因素。例如,在美国,来自非英语国家的女性移民中出现了很大的工资惩罚,对最低(有条件的)工资的惩罚是最负面的。另一方面,英国女性几乎没有经历过移民和本土女性的工资差异。我们发现有证据表明,美国和英国的男性移民工资较低,但最显著的结果是来自非英语国家的英国工人。我们在本文中报告的各种差异揭示了将分位数回归与个体异质性控制相结合在更好地理解移民工资影响方面的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Immigrant Heterogeneity and the Earnings Distribution in the United Kingdom and United States: New Evidence from a Panel Data Quantile Regression Analysis
In this paper we use a relatively new panel data quantile regression technique to examine native-immigrant earnings differentials 1) throughout the conditional wage distribution, and 2) controlling for individual heterogeneity. No previous papers have simultaneously considered these factors. We focus on both women and men, using longitudinal data from the PSID and the BHPS. We show that country of origin, country of residence, and gender are all important determinants of the earnings differential. For instance, a large wage penalty occurs in the U.S. among female immigrants from non-English speaking countries, and the penalty is most negative among the lowest (conditional) wages. On the other hand, women in Britain experience hardly any immigrant-native wage differential. We find evidence suggesting that immigrant men in the U.S. and the U.K. earn lower wages, but the most significant results are found for British workers emigrating from non-English speaking countries. The various differentials we report in this paper reveal the value of combining quantile regression with controls for individual heterogeneity in better understanding immigrant wage effects.
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